Title :
Modeling, Estimation, and Control of Human Circulatory System With a Left Ventricular Assist Device
Author :
Wu, Yi ; Allaire, Paul E. ; Tao, Gang ; Olsen, Don
Author_Institution :
Pennsylvania State Univ., Erie
fDate :
7/1/2007 12:00:00 AM
Abstract :
In this paper, a state-space model is developed through theoretical analysis and numerical solutions to approximate the response of the human circulatory system. This system model has one critical time-varying parameter: the resistance of peripheral blood vessels. A parameter estimation scheme is derived to estimate this parameter, and the parameter estimate is used to implement an adaptive observer to estimate the aortic pressure for physiological control. An optimal adaptive controller is proposed to control the estimated aortic pressure to track a reference signal updated by a nonlinear function of the pump head to meet the physiological need. A Matlab simulation program and an experimental mock human circulatory loop are employed as test environments for the human circulatory systems with a left ventricular assist device and their physiological controllers. Different physiological conditions, such as the variation of left ventricular failures, variation of activities, and collapse of the left ventricle, are evaluated to test the designed physiological control system. Simulation and experimental results consistently show that the aortic pressure estimation error is small, and that the abnormal hemodynamic variables of a congestive heart failure patient are restored back to the normal physiological range.
Keywords :
adaptive control; blood vessels; cardiology; control engineering computing; medical control systems; observers; optimal control; parameter estimation; time-varying systems; Matlab simulation; abnormal hemodynamic variables; adaptive observer; aortic pressure estimation; congestive heart failure patient; critical time-varying parameter; human circulatory system; left ventricular assist device; nonlinear function; numerical solution; optimal adaptive controller; parameter estimation; peripheral blood vessels; physiological control; state-space model; theoretical analysis; Adaptive control; Circulatory system; Humans; Mathematical model; Optimal control; Parameter estimation; Pressure control; Programmable control; System testing; Time varying systems; Adaptive control; circulatory system; estimation; feedback control; left ventricular assist device; modeling; pump head;
Journal_Title :
Control Systems Technology, IEEE Transactions on
DOI :
10.1109/TCST.2006.890288